A curve C has equation $y = e^x + x^4 + 8x + 5$ - Edexcel - A-Level Maths Pure - Question 3 - 2014 - Paper 6

The curve $y = x^3$ should start at the origin (0,0) and pass through Quadrants 1 and 3. It has a positive gradient there.

For the curve $y = 2 - e^{-x}$, it crosses the $y$-axis at (0, 1) since $e^{0} = 1$. The asymptote is at $y = 2$.

The sketch of $y = x^3$ and $y = 2 - e^{-x}$ shows that these two curves intersect at one point on the graph, which indicates there is only one turning point where the values of $y = x^3$ and $y = 2 - e^{-x}$ are equal.

Using the iteration formula:

$x_1 = (-2 - e^{-(-1)})^{1/3}$ This results in

$x_1 \approx -1.26376$

Calculating $x_2$:

$x_2 = (-2 - e^{-(-1.26376)})^{1/3}$ This results in

$x_2 \approx -1.26126$

The turning point of the curve C is therefore approximately at the coordinates $(-1.26, y)$ where $y = e^{-1.26} + (-1.26)^4 + 8(-1.26) + 5$. Calculating this, we find:

$y \approx 3.35$

Thus, the turning point is $(-1.26, 3.35)$.